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I Pastan

Publications and source records attributed to I Pastan.

At least 271 records · Page 15Linked to original sources

Recombinant toxins.

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ADP Ribose Transferases↗

Efficient expression of drug-selectable genes in retroviral vectors under control of an internal ribosome entry site.

We describe a new retroviral vector system pSXLC/pHa that utilizes a putative internal ribosome entry site (IRES) from encephalomyocarditis virus downstream from a multicloning site to co-express drug-selectable markers with a second non-selectable cDNA in a eukaryotic expression vector. The positive drug-selectable marker, MDR1, and the positive-negative marker, herpes simplex virus thymidine kinase (HSV-TK), were successfully introduced and expressed in the pSXLC/pHa system. The pSXLC-MDR and pSXLC-TK vectors contain the drug-selectable genes under translational control of the IRES and multiple cloning sites upstream for insertion of second cDNAs which can be co-expressed in this system. The inserts of these pSXLC plasmids were designed for easy transfer to the pHa retrovirus vector which has a strong promoter from Harvey murine sarcoma virus. The IRES-MDR-carrying retroviral vector, pHa-MCS-IRES-MDR, conferred resistance to vincristine and adriamycin. The IRES-TK-containing vector, pHa-MCS-IRES-TK conferred HAT-resistance in TK-deficient cells and the transfectants showed hypersensitivity to ganciclovir. These "flexible" vectors should be useful for co-expression of genes for selectable gene transfer and for positive-negative (suicide) selections in vitro and in vivo.

3T3 Cells↗

Cloning, expression and characterization of the Fv fragments of the anti-carbohydrate mAbs B1 and B5 as single-chain immunotoxins.

The mAbs B1 (IgG1 kappa) and B5 (IgM kappa) recognize carbohydrate epitopes on human carcinoma cells. The Fv regions of these antibodies were separately cloned from hybridoma RNA using reverse transcription and PCR with oligonucleotide primers designed according to the amino acid sequences of the N-termini. The Fv regions also provide sequences for translation initiation in Escherichia coli (Fr1 oligos) and sequences of the constant region of the heavy and light domains (CH1 or C-kappa oligos). Following the determination of the DNA sequence of the Fvs, primers were designed according to the 3' ends of the VH and VL domains. These also provided for a peptide linker at the C-terminus of the VH and a short connector at the C-terminus of the VL (Fr4 oligos). The VH and VL were then each PCR-amplified using their corresponding Fr1 and phosphorylated Fr4 oligos. The resulting PCR products were annealed as 'mutagenic primers' to a uracil-containing single-stranded template obtained from an expression plasmid encoding a single-chain immunotoxin in which the B3 single-chain Fv is fused to a truncated form of Pseudomonas exotoxin (PE). Thus, the B1 and B5 variable domains replaced their corresponding B3 domains in the expression plasmid by 'variable domain shuffling' without subcloning. The resulting B1(Fv)-PE38 and B5(Fv)-PE38 were expressed in E. coli and purified to near homogeneity. Both show specific cytotoxicities to human carcinoma cell lines, but B1(Fv)-PE38 is much more active, reflecting its higher affinity to the target cells.

ADP Ribose Transferases↗

Engineering interchain disulfide bonds into conserved framework regions of Fv fragments: improved biochemical characteristics of recombinant immunotoxins containing disulfide-stabilized Fv.

Using molecular modeling technology, we have recently identified two positions in conserved framework regions of antibody Fv fragments (Fvs) that are distant from CDRs, and potentially can be used to make recombinant Fv fragments in which the unstable VH and VL heterodimer is stabilized by an interchain disulfide bond inserted between structurally conserved framework positions. A disulfide bond has been introduced at one of these positions, VH44-VL105, and shown to stabilize various Fvs that retain full binding and specificity. Recombinant immunotoxins, e.g. B3(dsFv)-PE38KDEL in which this disulfide-stabilized Fv moiety is connected to a truncated form of Pseudomonas exotoxin (PE; PE38KDEL) which contains the translocation and ADP ribosylation domains, are indistinguishable in binding and specificity from its single-chain immunotoxin counterparts. We have now analyzed the alternative position, (VH111-VL48), predicted by the modeling methodology, for disulfide stabilization of mAb B3(Fv) by producing a recombinant immunotoxin with such disulfide-stabilized (ds) Fv. This immunotoxin was also very active and retained full specificity to B3 antigen-positive cells. However, it was 2- to 3-fold less active than the VH44-VL105 dsFv-molecule. We also tested various biochemical features of VH44-VL105 and VH111-VL48 dsFv immunotoxins and compared them with the corresponding single-chain immunotoxin. We found the dsFv immunotoxins were more stable in human serum and more resistant to thermal and chemical denaturation than the single chain (sc) Fv immunotoxin. Because dsFv immunotoxins and dsFvs have full activity and specificity and improved stability, they may be more useful than scFv immunotoxins as therapeutic and diagnostic agents.

ADP Ribose Transferases↗

Primate antibody response to immunotoxin: serological and computer-aided analysis of epitopes on a truncated form of Pseudomonas exotoxin.

NLysPE38 is a 38-kDa derivative of Pseudomonas exotoxin (PE) in which domain Ia (amino acids 1 to 252) and part of domain Ib (365 to 380) are deleted and an 11-amino-acid N-terminal peptide is added. LMB-1 is an immunotoxin in which the monoclonal antibody B3 is coupled to NLysPE38 near its N terminus. LMB-7 is a single-chain immunotoxin in which the Fv fragment of B3 is fused to PE38. To identify the antigenic regions of PE38, 12 polyclonal serum samples from monkeys immunized with the immunotoxins LMB-1 (six monkeys) and LMB-7 (six monkeys) were tested for their reactivity to a panel of 120 synthetic, overlapping peptides representing the amino acid sequence of NLysPE38. The antibody responses to peptides were similar among the 12 serum specimens, identifying several major immunodominant B-cell epitopes. Predominant reactivity was seen in six locations: amino acids 272 to 287, 341 to 359, 504 to 516, 540 to 564, and 573 to 591 and the C-terminal amino acids 591 to 613. The sera did not react with approximately 75% of the peptides. Furthermore, a computer-aided analysis was done to predict the immunologically relevant areas and revealed the same antigenic regions defined by serum reactivity to peptides. Competition enzyme-linked immunosorbent assays and neutralization assays were performed with domain II, III, or III plus Ib of PE38 and confirmed the immunodominance of domain III. To analyze the role of specific amino acids in antibody binding, individual amino acids of PE38 with large accessible surface areas were altered by site-directed mutagenesis. These results also show that the predicted areas of immunogenicity agree with the reactivity of the anti-PE38 antibodies to peptides and to the mutants of PE.

ADP Ribose Transferases↗

The heparin-binding domain of heparin-binding EGF-like growth factor can target Pseudomonas exotoxin to kill cells exclusively through heparan sulfate proteoglycans.

Heparin-binding EGF-like growth factor (HB-EGF) is a smooth muscle cell mitogen composed of both EGF receptor and heparin-binding domains. To better understand the function of its domains, intact HB-EGF or its heparin-binding (HB) domain (amino acids 1-45) were fused to a mutant Pseudomonas exotoxin with an inactivated cell-binding domain. The resulting chimeric toxins, HB-EGF-PE* and HB-PE*, were tested on tumor cells, proliferating smooth muscle cells and a mutant Chinese hamster ovary cell line deficient in heparan sulfate proteoglycans (HSPGs). Two targets were found for HB-EGF-PE*. Cells were killed mainly through EGF receptors, but the HB domain was responsible for killing via HSPGs. HB-PE* did not bind to the EGF receptor and thus was cytotoxic by interacting exclusively with HSPGs. We conclude that the HB domain of HB-EGF is able to mediate internalization through HSPGs, without requiring the EGF receptor.

ADP Ribose Transferases↗

Kinetic evidence suggesting that the multidrug transporter differentially handles influx and efflux of its substrates.

A kinetic approach was used to analyze the mechanism by which a substitution of valine for glycine at position 185 in the multidrug transporter alters its substrate specificity so that colchicine and etoposide transport is increased, daunorubicin transport is unchanged, and vinblastine transport is decreased. Time courses for uptake and efflux of colchicine, vinblastine, etoposide, and daunorubicin for NIH/3T3 mouse cells transfected with wild-type (MDR1-G185) and mutant (MDR1-V185) strains of the human mdr1 gene were determined at room temperature in the presence and absence of an energy supply. The initial rate of vinblastine uptake was reduced approximately 5-fold by glucose feeding of ATP-depleted wild-type (MDR1-G185) cells but was only halved in MDR1-V185 transfectants. In contrast, glucose feeding decreased the initial rate of colchicine uptake approximately 4-fold in the MDR1-V185 (mutant) transfectant but not in the MDR1-G185 (wild-type) transfectant. Efflux of colchicine was accelerated > 5-fold in both the MDR1-V185 (mutant) and MDR1-G185 (wild-type) transfectants when glucose was given to raise ATP levels. The effects on initial rates of colchicine uptake accounted semiquantitatively for the increased colchicine resistance of MDR1-V185 (mutant) transfectants. Similar effects were found for etoposide in the MDR-V185 transfectants. Quinidine in the external medium greatly inhibited drug entry rates but had little effect on efflux, whereas verapamil inhibited both uptake and efflux. A possible interpretation of these data is that the multidrug transporter extracts drugs from the external and internal halves of the membrane bilayer by different paths, which are distinguishable by mutation and inhibitors.

3T3 Cells↗

Localization of the forskolin labeling sites to both halves of P-glycoprotein: similarity of the sites labeled by forskolin and prazosin.

An iodinated derivative of forskolin, 6-O-[[2-[3-(4-azido-3-[125I] iodophenyl)propionamido]ethyl]carbamyl]forskolin ([125I]6-AIPP-Fsk), photolabels the multidrug efflux pump P-glycoprotein in membranes prepared from the multidrug-resistant cell lines KB-V1 and KB-C1. The labeling site for [125I]6-AIPP-Fsk was localized by immunoprecipitation of tryptic fragments of P-glycoprotein labeled in KB-C1 membranes. A 6-kDa, photolabeled, tryptic fragment was immunoprecipitated by antiserum raised against residues 348-419 of P-glycoprotein, PEPG9, but not by antisera raised against flanking regions PEPG7 and PEPG11. A peptide that corresponds to residues 343-359 of P-glycoprotein inhibited immunoprecipitation of the 6-kDa fragment by antiserum against PEPG9 but had no effect on the immunoprecipitation of photolabeled fragments by antiserum against PEPG7. A second peptide, corresponding to residues 360-376, had no effect on the immunoprecipitation by antiserum against PEPG9. [125I]6-AIPP-Fsk labels the carboxyl-terminal half of P-glycoprotein, because low molecular mass tryptic fragments were immunoprecipitated by three carboxyl-terminal antisera. Therefore, [125I]6-AIPP-Fsk labels both halves of P-glycoprotein, and labeling in the amino-terminal half can be localized to residues 291-359, which span proposed transmembrane regions 5 and 6. KB-V1 membranes photolabeled with [125I]6-AIPP-Fsk and [125I]iodoarylazidoprazosin were digested with either Staphylococcus aureus V8 protease or chymotrypsin and had similar digestion patterns, suggesting that the two drugs label the same sites on P-glycoprotein.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Transactivation of the human multidrug resistance (MDR1) gene promoter by p53 mutants.

Multidrug resistance in human cancer is associated with overexpression of the MDR1 gene, which encodes a plasma membrane energy-dependent efflux pump termed P-glycoprotein (or the multidrug transporter), which confers cross-resistance to multiple hydrophobic natural product cytotoxic drugs. We have previously shown in cotransfection experiments that activity of the human MDR1 gene promoter is modulated by Ras and p53, suggesting that expression of the MDR1 gene may be associated with the activation of oncogenes and/or functional loss of tumor suppressor genes during oncogenesis. To further characterize the effects of p53 on the MDR1 promoter, we have shown in the current study that the region of the promoter that is required for transactivation by p53 mutants overlaps with the region that is essential for basal promoter activity. In addition, we also have shown that several different p53 mutants transactivate the MDR1 promoter in several different cell types, including embryo fibroblasts derived from the p53-deficient (p53-l-) mice generated by gene targeting.

Animals↗

Recombinant single-chain immunotoxins against T and B cell leukemias.

Interleukin 2 (IL2) receptors (IL2R's) are found on malignant cells in many human leukemias and lymphomas and are expressed by activated T cells in many autoimmune disorders. Anti-Tac(Fv), a single-chain protein composed of the variable heavy and light domains of the anti-IL2R monoclonal antibody anti-Tac, can be genetically fused to derivatives of Pseudomonas exotoxin (PE) or diphtheria toxin (DT) to form potent immunotoxins. We have shown that anti-Tac(Fv) binds to low affinity IL2R's on fresh chronic lymphocytic leukemia (CLL) and adult T-cell leukemia (ATL) cells and can target either toxin to kill those cells. Anti-Tac(Fv)-PE40, containing the truncated form of PE without its binding domain, was cytotoxic to malignant cells from 8 of 8 ATL patients tested, with IC50's ranging from 0.11 to 5.5 ng/ml. Anti-Tac(Fv)-PE40KDEL, a derivative of anti-Tac(Fv)-PE40 which contains the KDEL carboxyl terminus, was more cytotoxic toward cells from all ATL patients and also killed CLL cells from 8 of 16 patients. DT388-anti-Tac(Fv), containing amino acids 1-388 of DT fused to the amino terminus of anti-Tac(Fv), was less cytotoxic than anti-Tac(Fv)-PE40 on ATL cells from 4 of 5 patients, but was cytotoxic toward CLL cells from 12 of 16 patients. DT388-IL2, where IL2 is substituted for anti-Tac(Fv), is similar to DAB389IL2, an IL2-toxin currently in clinical trials. DT388-IL2 and DAB389IL2 differ by only a few amino acids and have equal cytotoxic activity. DT388-IL2 was cytotoxic toward ATL cells from all patients tested, but usually required much higher concentrations than anti-Tac(Fv)-PE40 and was poorly active against CLL cells. Thus, recombinant toxins containing anti-Tac(Fv) are cytotoxic toward freshly isolated CLL and ATL cells and will be studied further as potential therapy for IL2R-related disorders.

ADP Ribose Transferases↗

Evaluation of the serum stability and in vivo biodistribution of CHX-DTPA and other ligands for yttrium labeling of monoclonal antibodies.

UNLABELLED: Serum stability and in vivo biodistribution of both A and B isomers of the 2-(p-isothiocyanatobenzyl) (p-SCN-Bz)-cyclohexyldiethylenetriaminepentaacetic acid ligand (CHX-DTPA), a recently developed backbone-substituted derivative of DTPA, were evaluated and compared to those of 2-(p-SCN-Bz)-6-methyl-DTPA (1B4M-DTPA) and 2-(p-SCN-Bz)-1,4,7,10-tetraazacyclododecane tetra-acetic acid (2B-DOTA). METHODS: Stability of 88Y-labeled ligands (0.1 microM) was evaluated in serum for up to 17 days. For biodistribution, ligands were conjugated to monoclonal antibody (Mab) B3, a murine IgG1k, and labeled with 88Y at 0.1-0.3 mCi/mg. Nontumor-bearing nude mice were injected intravenously with 1-2 microCi/4-10 micrograms of 88Y-labeled B3-conjugates and killed at 6 hr and daily up to 168 hr postinjection. Indium-111-(1B4M)-B3 was co-injected in all mice as internal control. RESULTS: Serum stability of 88Y-DOTA failed to show any significant release of activity, whereas pseudo-first-order dissociation rate constants of 3.97 x 10(-3), 2.54 x 10(-3) and 1.46 x 10(-2) (day-1) were calculated for 88Y-1B4M, 88Y-CHX-A and 88Y-CHX-B, respectively. Accordingly, cortical bone uptake of 88Y was significantly higher for all DTPA-derivative chelates than for DOTA. CONCLUSIONS: While none of the DTPA-derivative chelates could challenge DOTA in its ability to hold the radioytrium, significant differences were observed in the kinetic inertness of the A and B isomers of CHX, indicating that the CHX-B ligand is not as suitable for 90Y-labeling of Mabs.

Animals↗

Targeted disruption of the mouse mdr1b gene reveals that steroid hormones enhance mdr gene expression.

To evaluate the role of P-glycoprotein in steroid secretion in adrenal cells, we have used gene targeting to introduce a null mutation into one allele of the mdr1b gene in mouse Y1 adrenal cells. Characterization of both the wild-type and the mutant cell lines revealed the following. 1) The expression of mdr1b is enhanced by steroid hormones, in a feedback regulatory mechanism. Inhibition of steroid biosynthesis by 2-aminoglutethimide blocks the adrenocorticotropin (ACTH)-induced increase in mdr1b mRNA levels. 2) ACTH-stimulated steroid secretion is markedly decreased in the mutant cell line. This decreased steroid secretion in the mutant cells occurs despite an increase in the levels of mdr1b mRNA and P-glycoprotein. Kinetic analyses of vinblastine and daunomycin accumulation in both the wild-type and the mutant cell lines during ACTH-stimulated steroidogenesis show that in the mutant cells both drugs accumulated to higher levels than in Y1 cells, suggesting that the remaining mdr1b allele in the mutant cells is relatively inactive as an exporter of steroids, or that the targeted disruption of the mdr1b allele is associated with other changes in the mutant cells which block ACTH-stimulated steroid secretion.

8-Bromo Cyclic Adenosine Monophosphate↗

Cytotoxicity of folate-Pseudomonas exotoxin conjugates toward tumor cells. Contribution of translocation domain.

Folate-protein conjugates can be nondestructively delivered into a cell's cytoplasm via folate receptor-mediated endocytosis if (i) the target cells express a folate-binding protein, and (ii) if the folate is linked to its attached protein at a site that does not interfere with receptor recognition. Because such conjugates have been observed to remain in endosomal compartments for extended periods following cellular uptake, we decided to evaluate whether release into the cytoplasm might be expedited by inclusion of a translocation domain in the folate-protein construct. To test this possibility, momordin-folate and truncated Pseudomonas exotoxin-folate conjugates (LysPE38 and Cys-PE35), i.e. protein synthesis inhibitors either lacking or containing the desired translocation domain, respectively, were examined for their abilities to block protein synthesis in a variety of cell types. The translocation competent LysPE38-folate construct was found to kill cells six times more rapidly with 10-fold greater potency than the permeation-incompetent mormordin-folate. Further, cells expressing low levels of folate receptors could only be exterminated by the translocation competent Pseudomonas exotoxin-folate conjugates. When the translocation capability of CysPE35-folate was inactivated by modification of Cys287, the construct also lost most of its cytotoxicity. These data suggest that autocatalysis of transport from an internal vesicular compartment into the cytoplasm can greatly augment the cytotoxicity of a protein toxin entering cells via the folate endocytosis pathway. Because the folate ligand can selectively target a protein conjugate to cancer cells in the presence of normal cells, such translocatable toxin-folate constructs warrant further study as a possible treatment for some malignancies.

ADP Ribose Transferases↗

Fluorescent cellular indicators are extruded by the multidrug resistance protein.

In this report we show that NIH-3T3 mouse fibroblasts stably expressing the human multidrug transporter (MDR1 or P-glycoprotein), in contrast to the control NIH-3T3 cells, actively extrude the hydrophobic acetoxymethyl ester (AM) derivatives used for cellular loading of various fluorescent calcium and pH indicators. This dye extrusion is blocked by competing substrates and inhibitors of the multidrug transporters, e.g. by verapamil, vincristine, sodium orthovanadate, oligomycin, and a monoclonal anti-MDR1 antibody. The hydrophilic free acid forms of the indicators are not exported by MDR1. We also demonstrate that in isolated cell membranes the MDR1-ATPase, similar to that by known substrates of the transporter, is stimulated by the AM derivatives of fluorescent dyes whereas the free acid forms of the dyes are without effect. Since (i) the AM derivatives of the fluorescent indicators rapidly permeate the cell membrane and are readily cleaved by high activity and large capacity cytoplasmic esterases and (ii) the free acid forms are not substrates for export by MDR1, the observations above suggest that dye extrusion by MDR1 may occur without a cytoplasmic appearance of the AM compounds. These data also call attention to the possible interaction of widely used hydrophobic fluorescent indicators with MDR1 and offer an efficient detection of MDR1-expressing tumor cells as well as a screening method for examining drug interactions with the multidrug transporter.

3T3 Cells↗

Mechanism of action of Pseudomonas exotoxin. Identification of a rate-limiting step.

Pseudomonas exotoxin (PE) enters cells by receptor-mediated endocytosis and is cleaved by a cellular protease between Arg279 and Gly280 to produce an NH2-terminal fragment of 28 kDa which contains the toxin's binding domain and a COOH-terminal fragment of 37 kDa which has translocating and ADP-ribosylating activity. After proteolysis, the COOH-terminal fragment reaches the endoplasmic reticulum by retrograde transport where it translocates to the cytosol and inhibits protein synthesis by ADP-ribosylating elongation factor 2. To understand how the 37-kDa fragment functions, we focused on the role of specific amino acids located near its NH2 terminus. We found that there was a 4-250-fold loss in toxic activity when tryptophan 281, leucine 284, or tyrosine 289 were changed to other residues. Mutations at these three positions did not interfere with the receptor binding, cell-mediated proteolytic cleavage, or ADP-ribosylating activity. To determine the role of these amino acids, a competition assay was devised in which the addition of excess PE delta 553, a mutant form of PE that lacks ADP-ribosylation activity, competed efficiently for the toxicity of PE. Excess PE with mutations near the NH2 terminus of the 37-kDa fragment competed poorly. This competition occurred after proteolysis since PEGly276, a mutant form of PE that is not cleaved, did not complete. We conclude that specific amino acids at the NH2 terminus of the 37-kDa fragment interact in a saturable manner with an unknown intracellular component.

ADP Ribose Transferases↗

Polyethylene glycol-modified chimeric toxin composed of transforming growth factor alpha and Pseudomonas exotoxin.

Modification of proteins with monomethoxy-polyethylene glycol (mPEG) has been shown to prolong circulation time and to reduce immunogenicity. To make a mPEG-modified recombinant toxin that retained cytotoxic activity but had a longer residence time in circulation, we have constructed an altered form of TGF alpha-PE40, a recombinant toxin composed of human transforming growth factor alpha (TGF alpha) fused to a fragment of Pseudomonas exotoxin (PE38) devoid of its cell-binding domain. In the newly designed protein, termed TGF alpha R29-L2-CH2-PE38QQ delta (TCP), there are no lysine residues in the TGF alpha and PE38 portions. Human IgG4 constant region CH2 and a tetradecapeptide linker; L2, are inserted between TGF alpha and PE38. Together, L2 and CH2 contain 13 lysine residues as potential modification sites for mPEG. mPEG conjugates of TCP (PEG-TCP) were generated and the products were resolved by ion exchange chromatography. Two PEG-TCP species termed B4 and B6 retained 15 and 4% of cytotoxicity, respectively, and 26% of their receptor binding activity compared with the unmodified TCP. Both B4 and B6 had prolonged circulation times in the blood and reduced toxicity in animals. The mean residence times of B4 and B6 were 37 and 68 min, respectively, compared to 7 min for TCP. When administered i.v. to tumor bearing mice, both B4 and B6 produced marked antitumor effects whereas the unmodified TCP had none. Also, the immunogenicity of PEG-TCP was 5-10 times less than that of TCP. We suggest that the prolonged circulating time and reduced toxicity of PEG-TCP compensate for a diminished cytotoxic activity and enlarge significantly the therapeutic window of this chimeric toxin.

ADP Ribose Transferases↗